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Bio-Inspired adaptive damping in hydrokinetic energy harnessing using flow-induced oscillations

机译:利用流致振荡的水动力能量利用中的生物启发式自适应阻尼

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A hydrokinetic energy converter using Flow Induced Oscillations (FIOs) of a one-degree-of-freedom cylinder-oscillator, with nonlinear adaptive damping and linear spring stiffness, is introduced and studied experimentally. Comparison to a linear-oscillator in FIO shows that this new converter, with velocity-proportional damping coefficient, is more effective in galloping, where both flow and cylinder speeds are higher. It also impacts VIV, since the converter is no longer restricted by fixed damping, which results either in ceasing motion due to excessive damping, or in low harnessed energy due to insufficient damping. The impact is most profound in the VIV to galloping transition where adaptive damping prevents shutting down of hydrokinetic energy conversion. Damping-to-velocity rate, linear spring-stiffness, and flow-velocity are the experimental parameters with Reynolds number 30,000 = Re = 120,000. Experimental results for amplitude response, frequency response, energy harvesting, efficiency and instantaneous energy of the converter are presented and discussed. The main conclusions are: (1) The nonlinear, adaptive, velocity-proportional damping coefficient increases the harnessed power. (2) The operational range of flow velocities increases. (3) At lower flow speeds, the adaptive damping stabilizes the unstable oscillations typically occurring in this region. (4) At higher flow speeds, adaptive damping results in higher harnessed power than constant damping, thus, better emulating passively a corresponding, natural, active motion by fish. (5) Increase of 51%-95% in converted power by the nonlinear oscillator compared to linear oscillator has been measured. (6) The adaptive damping converter reaches a plateau in harnessed efficiency at high flow velocity (fully developed galloping). (C) 2019 Elsevier Ltd. All rights reserved.
机译:引入并实验研究了一种利用单自由度圆柱体振荡器的流致振荡(FIO)的流体动力学换能器,具有非线性自适应阻尼和线性弹簧刚度。与FIO中的线性振荡器的比较表明,这种具有速度比例阻尼系数的新型转换器在疾驰时的效率更高,因为后者的流速和缸速都更高。它还会影响VIV,因为转换器不再受到固定阻尼的限制,这会由于过度阻尼而停止运动,或者由于阻尼不足而导致线束能量降低。在从VIV到驰transition过渡的过程中,影响最为深远,在该过渡中,自适应阻尼阻止了流体动力学能量转换的停止。阻尼速率,线性弹簧刚度和流速是雷诺数为30,000 <= Re <= 120,000的实验参数。给出并讨论了转换器的幅度响应,频率响应,能量收集,效率和瞬时能量的实验结果。主要结论为:(1)非线性自适应速度比例阻尼系数提高了线束功率。 (2)流速的操作范围增加。 (3)在较低的流速下,自适应阻尼可稳定通常在该区域发生的不稳定振荡​​。 (4)在较高的流速下,自适应阻尼比恒定阻尼产生的线束功率更高,因此,可以更好地被动模拟鱼的相应自然主动运动。 (5)与线性振荡器相比,非线性振荡器的转换功率增加了51%-95%。 (6)自适应阻尼转换器在高流速下(充分发展的驰ing)达到了稳定的利用效率。 (C)2019 Elsevier Ltd.保留所有权利。

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